A touch panel including a substrate, a plurality of driving electrode series and a plurality of sensing electrode series is provided. The plurality of driving electrode series extending along a first direction is disposed on the substrate. The plurality of sensing electrode series extending along a second direction different from the first direction is disposed on the substrate. The plurality of driving electrode series and the plurality of sensing electrode series are intersected to constitute a plurality of sensing units, in which each sensing unit has a center region and a surrounding region. A first electrode spacing is formed between the driving electrode series and the sensing electrode series disposed in the center region, and a second electrode spacing is formed between the driving electrode series and the sensing electrode series disposed in the surrounding region. The second electrode spacing is smaller than the first electrode spacing.
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1. A touch panel, comprising:
a substrate;
a plurality of driving electrode series, disposed on the substrate, wherein each of the plurality of driving electrode series comprises a driving electrode trunk extending along a first direction and a plurality of driving electrode branches extending along a second direction, the first direction being different from the second direction extending along a first direction; and
a plurality of sensing electrode series, disposed on the substrate, wherein each of the plurality of sensing electrode series comprises a sensing electrode trunk extending along the second direction and a plurality of sensing electrode branches extending along the first direction, the plurality of driving electrode trunks and the plurality of sensing electrode trunks being intersected to constitute a plurality of sensing units, each sensing unit having a center region and a surrounding region, wherein the center region is located inside the surrounding region, wherein one of a sensing electrode trunk and one of the adjacent driving electrode branch disposed in the center region form a capacitor and a first electrode spacing along the first direction, and the same sensing electrode trunk and another one of the adjacent driving electrode branch disposed in the surrounding region form a capacitor and a second spacing along the first direction, and the second electrode spacing is smaller than the first electrode spacing.
14. A touch display panel, comprising: a display panel;
a touch sensing element, disposed on the display panel, wherein the touch sensing element comprises:
a plurality of driving electrode series, wherein each of the plurality of driving electrode series comprises a driving electrode trunk extending along a first direction and a plurality of driving electrode branches extending along a second direction, the first direction being different from the second direction; and
a plurality of sensing electrode series, wherein each of the plurality of sensing electrode series comprises a sensing electrode trunk extending along the second direction and a plurality of sensing electrode branches extending along the first direction, the plurality of driving electrode trunks and the plurality of sensing electrode trunks being intersected to constitute a plurality of sensing units, each sensing unit having a center region and a surrounding region, wherein the center region is located inside the surrounding region, wherein one of a sensing electrode trunk and one of the adjacent driving electrode branch disposed in the center region form a capacitor and a first electrode spacing along the first direction, and the same sensing electrode trunk and another one of the adjacent driving electrode branch disposed in the surrounding region form a capacitor and a second spacing along the first direction, and the second electrode spacing is smaller than the first electrode spacing.
18. A touch panel, comprising:
a substrate;
a plurality of driving electrode series, disposed on the substrate, each of the plurality of driving electrode series extending along a first direction, each of the plurality of driving electrode series comprising at least one driving electrode trunk extending along the first direction and a plurality of driving electrode branches extending along a second direction; and
a plurality of sensing electrode series, disposed on the substrate, each of the plurality of sensing electrode series extending along the second direction, the first direction being different from the second direction, each of the plurality of sensing electrode series comprising at least one sensing electrode trunk extending along the second direction and a plurality of sensing electrode branches extending along the first direction, the plurality of driving electrode series and the plurality of sensing electrode series being intersected to constitute a plurality of sensing units, each sensing unit having a center region and a surrounding region, wherein the center region is located inside the surrounding region, each of the sensing units comprising a plurality of driving electrode trunks and a plurality of sensing electrode trunks, wherein one of a sensing electrode trunk and one of the adjacent driving electrode branch disposed in the center region form a capacitor and a first electrode spacing along the first direction, and the same sensing electrode trunk and another one of the adjacent driving electrode branch disposed in the surrounding region form a capacitor and a second spacing along the first direction, and the second electrode spacing is smaller than the first electrode spacing.
2. The touch panel according to
3. The touch panel according to
4. The touch panel according to
5. The touch panel according to
6. The touch panel according to
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8. The touch panel according to
9. The touch panel according to
10. The touch panel according to
11. The touch panel according to
12. The touch panel according to
13. The touch panel according to
15. The touch display panel according to
16. The touch display panel according to
17. The touch display panel according to
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This application claims the priority benefit of Taiwan application serial no. 99147244, filed Dec. 31, 2010. The entirety of the above-mentioned patent application is hereby incorporated by reference herein and made a part of this specification.
1. Field of the Invention
The present invention relates to a touch panel and a touch display panel, in particular, to a capacitive touch display panel.
2. Description of Related Art
In recent years, with the rapid development of, for example, information technology, wireless and mobile communication, and information appliances, for the purpose of more convenience, lighter weight and more humanization, a touch panel has gradually replaced a keyboard and a mouse, and becomes a main input device of many information products. Generally, the touch panel is essentially divided into, for example, a resistive touch panel, a capacitive touch panel, an optical touch panel, an acoustic touch panel and an electromagnetic touch panel. For example, the capacitive touch panel may be divided into a self capacitive touch panel and a mutual capacitive touch panel according to a driving and a sensing manner thereof
The conventional mutual capacitive touch panel includes a plurality of first electrode series extending along an X-axis direction, and a plurality of second electrode series extending along a Y-axis direction, in which the X-axis direction is different from the Y-axis direction. When a user touches the touch panel through a finger, the capacitance between the first electrode series and the second electrode series may be varied, and such a variation signal is transmitted to a controller, and then a coordinate of the touched position is calculated. When the mutual capacitive touch panel is combined with a display panel to constitute a mutual capacitive touch display panel, displayed images on the display panel may be changed according to the touched position selected by the user.
Generally, in order to improve the sensing sensitivity of the touch panel, a spacing between the first electrode series and the second electrode series needs to be increased, such that the capacitance variation between the first electrode series and the second electrode series is increased, so as to strengthen the sensed signal of the capacitance variation. However, although increasing the spacing between the first electrode series and the second electrode series may strengthen the sensed signal of a touched point of a user, when the spacing between the first electrode series and the second electrode series is too large, the touched point cannot be correctly calculated by using an overlapped proportion of the adjacent sensed signals in combination with interpolation, since an overlapped region between the adjacent sensed signals is insufficient, so that the conventional touch panel fails to clearly determine the touch locus of the user. Specifically, when the user draws a straight line on the touch panel through the finger, the sensing linearity of the touch panel is caused to be poor, since the overlapped region of the adjacent sensed signals is insufficient.
Accordingly, the present invention is directed to a touch panel and a touch display panel, which has better sensing linearity.
The present invention provides a touch panel, which includes a substrate, a plurality of driving electrode series, and a plurality of sensing electrode series. The plurality of driving electrode series is disposed on the substrate, and each driving electrode series extends along a first direction. The plurality of sensing electrode series is disposed on the substrate, and each sensing electrode series extends along a second direction, in which the first direction is different from the second direction. The plurality of driving electrode series and the plurality of sensing electrode series are intersected to constitute a plurality of sensing units, in which each sensing unit has a center region and a surrounding region. A first electrode spacing is formed between the driving electrode series and the sensing electrode series disposed in the center region, and a second electrode spacing is formed between the driving electrode series and the sensing electrode series disposed in the surrounding region. The second electrode spacing is smaller than the first electrode spacing.
The present invention further provides a touch display panel, which includes a display panel and a touch sensing element. The touch sensing element is disposed on the display panel, and includes a plurality of driving electrode series and a plurality of sensing electrode series. Each driving electrode series extends along a first direction, and each sensing electrode series extends along a second direction. The plurality of driving electrode series and the plurality of sensing electrode series are intersected to constitute a plurality of sensing units, in which each sensing unit has a center region and a surrounding region. A first electrode spacing is formed between the driving electrode series and the sensing electrode series disposed in the center region, and a second electrode spacing is formed between the driving electrode series and the sensing electrode series disposed in the surrounding region. The second electrode spacing is smaller than the first electrode spacing.
In an embodiment of the present invention, each of the sensing units constituted by intersecting the driving electrode series and the sensing electrode has a geometric center. Specifically, in each sensing unit, a distance from the geometric center to a boundary of the sensing unit is D, and a distance d from a boundary of the center region to the geometric center satisfies, for example, a formula of 0≦d≦0.95 D, preferably satisfies a formula of 0≦d≦0.8 D, and more preferably satisfies a formula of 0≦d≦0.5 D.
In an embodiment of the present invention, in the sensing units, the first electrode spacing G1 and the second electrode spacing G2 satisfies, for example, a formula of 0.06≦G2/G1≦0.8, preferably satisfies a formula of 0.07≦G2/G1≦0.7, and more preferably satisfies a formula of 0.1≦G2/G1≦0.6.
In an embodiment of the present invention, the plurality of driving electrode series is electrically insulated from each other, and the plurality of sensing electrode series is electrically insulated from each other.
In an embodiment of the present invention, each of the plurality of driving electrode series includes a driving electrode trunk extending along the first direction and a plurality of driving electrode branches extending along the second direction, and each of the plurality of sensing electrode series includes a sensing electrode trunk extending along the second direction and a plurality of sensing electrode branches extending along the first direction. Specifically, each driving electrode trunk includes a plurality of strip conductors and a plurality of driving bridge connectors, and each driving bridge connector spans the corresponding sensing electrode trunk and is connected between two adjacent strip conductors.
In an embodiment of the present invention, the touch panel further includes a plurality of patterned dielectric layers. The plurality of patterned dielectric layers are each located at intersection points of the plurality of driving electrode series and the plurality of sensing electrode series, and between each of the plurality of driving electrode series and each of the plurality of sensing electrode series.
In an embodiment of the present invention, the touch sensing element is integrated in the display panel.
In an embodiment of the present invention, the touch display panel further includes an auxiliary substrate, and the touch sensing element is disposed on the display panel through the auxiliary substrate.
Based on the above, in the touch panel and the touch display panel of the present invention, the sensing unit is divided into different regions, and the electrode spacing between the driving electrode series and the sensing electrode series satisfies a certain relation in the different regions of the sensing unit, thus improving the whole sensing sensitivity, and the linearity of the capacitive touch panel.
In order to make the features and advantages of the present invention more comprehensible, the present invention is described in further detail below with reference to embodiments and accompanying drawings.
The accompanying drawings are included to provide a further understanding of the invention, and are incorporated in and constitute a part of this specification. The drawings illustrate embodiments of the invention and, together with the description, serve to explain the principles of the invention.
Reference will now be made in detail to the present embodiments of the invention, examples of which are illustrated in the accompanying drawings. Wherever possible, the same reference numbers are used in the drawings and the description to refer to the same or like parts.
In addition, the touch sensing element 120 may also be directly formed on an external surface of the color filter substrate 114 of a display panel 100B, as shown in
It should be noted that, the auxiliary substrate 130 and the touch sensing element 120 in
The touch panel and different types of touch sensing elements on the touch display panel are described in detail below.
Referring to
To make the structure of the touch sensing element of the present invention clearer, description is made in detail below with reference to
As shown in
As shown in the enlarged view of
In order to clearly describe the signals sensed when the touch sensing element is touched, sensing linearity of the touch panel 200 when a user touches the sensing unit 240 is described below with the touch panel 200 as shown in
For example, a rectangle sensing unit 240 of this embodiment is taken as an example. When the intersection geometric center of the driving electrode series 220 and the sensing electrode series 230 is used as an origin C (0,0) of an XY coordinate axes, the upper left sensing unit 240a is, for example, a range encircled by −D≦x≦D and −D≦y≦D, the center region 240C is, for example, a range encircled by −0.95 D≦x≦0.95 D and −0.95D≦y≦0.95 D, and in this case, the surrounding region 240S is correspondingly a range encircled by −D≦x≦−0.95 D, 0.95 D≦x≦D, −D≦y≦−0.95 D, and 0.95 D≦y≦D. In addition, when the center region 240C of the sensing unit 240a is a range encircled by −0.8 D≦x≦0.8 D and −0.8 D≦y≦0.8 D, the surrounding region 240S is correspondingly a range encircled by −D≦x≦−0.8 D, 0.8 D≦x≦D, −D≦y≦−0.8 D, and 0.8 D≦y≦D. Moreover, when the center region 240C of the sensing unit 240a is a range encircled by −0.5 D≦x≦0.5 D and −0.5 D≦y≦0.5 D, the surrounding region 240S is correspondingly a range encircled by −D≦x≦−0.5 D, 0.5 D≦x≦D, −D≦y≦−0.5 D, and 0.5 D≦y≦D.
It should be noted that, the sensing unit may also be of a round shape, a diamond shape, a triangle shape, or a hexagon shape, in addition to the rectangle shape in this embodiment, and may be changed according to the design requirements. In short, when the sensing unit is of a round shape, the intersection geometric center of the driving electrode series and the sensing electrode series is the center of the round sensing unit, and the range of the center region may be designed according to the above relation. The distance d from the boundary of the center region to the geometric center is preferably satisfies the formula of 0≦d≦0.95 D, more preferably satisfies the formula of 0≦d≦0.8 D, and more preferably satisfies the formula of 0≦d≦0.5 D.
At this time, D is defined as a radius from the geometric center of the round sensing unit to the boundary, and in short, the shape of the sensing unit 240 is not limited in the present invention.
Particularly, in each sensing unit 240 of this embodiment, the second electrode spacing G2 formed in the surrounding region 240S is smaller than the first electrode spacing G1 formed in the center region 240C. Specifically, the first electrode spacing G1 and the second electrode spacing G2 are parallel spacing of the driving electrode series 220 and the sensing electrode series 230 along the first direction D1 and the second direction D2.
Referring to
In addition, in order to further improve the sensing sensitivity, the designer further increases the first electrode spacing G1 of the center region 240C, to increase the capacitance variation between the driving electrode series 220 and the sensing electrode series 230, and thus the sensed signal 260 of capacitance variation on the center region 240C is further strengthened on the premise of maintaining the sensing linearity, so as to improve the sensing sensitivity of the sensing unit 240.
Correspondingly,
In conclusion, each of the sensing units in the touch panel and the touch display panel of the present invention is divided into a center region and a surrounding region, and a smaller electrode spacing is formed in the center region than the surrounding region of the sensing unit, and thereby the touch panel and the touch display panel have high sensing sensitivity and sensing linearity.
It will be apparent to those skilled in the art that various modifications and variations can be made to the structure of the present invention without departing from the scope or spirit of the invention. In view of the foregoing, it is intended that the present invention cover modifications and variations of this invention provided they fall within the scope of the following claims and their equivalents.
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